
Pumps Course
Master every stage of pump engineering — from fluid mechanics fundamentals to hands-on troubleshooting and maintenance. This course covers centrifugal and positive displacement pumps, system curve analysis, installation, and condition monitoring. Whether you work in operations, maintenance, or engineering, you'll gain the technical depth to keep pumping systems running reliably and efficiently.
What you will learn:
Understand core fluid mechanics principles including pressure, head, flow rate, and viscosity as applied to pumping systems.
Select the right pump type using a structured decision framework based on flow, pressure, and fluid characteristics.
Analyze pump and system curves to determine operating points and predict off-design performance accurately.
Apply shaft alignment techniques and commissioning procedures to ensure safe, specification-compliant pump startups.
Implement preventive and condition-based maintenance programs that reduce unplanned downtime and extend pump service life.
Troubleshoot common pump failures systematically using fault-tree analysis to identify and correct root causes.
How you study in practice Pumps Course
How you practise Pumps Course
For companies looking to train their team
With Dedika for Business, the course includes exercises and examples tailored to your own business and the way your company needs.
Course Content
8 Chapters • 37 LessonsDuration between 4 and 360 hours (you decide)
Chapter 1HideHide detailsSee detailsFundamentals of Pump Technology
Fundamentals of Pump Technology
Lesson 1 • Pump Terminology and Units
Standardizes key terms—TDH, BEP, NPSH, and efficiency—used throughout the course. Ensures consistent communication across engineering and maintenance roles.
Lesson 2 • Introduction to Pumps and Their Role
Defines pumps, their industrial importance, and energy-transfer principles. Sets the conceptual baseline for all subsequent technical content.
Lesson 3 • Core Fluid Mechanics Concepts
Introduces pressure, flow rate, velocity, and viscosity as they apply to pumping systems. Provides the physics vocabulary needed for performance analysis.
Lesson 4 • Classification of Pump Types
Covers the two primary families—dynamic and positive displacement—and their subcategories. Enables correct pump selection based on application requirements.
Chapter 2HideHide detailsSee detailsCentrifugal Pump Design and Components
Centrifugal Pump Design and Components
Lesson 1 • Impeller Design and Function
Analyzes open, semi-open, and closed impeller geometries and their effect on performance. Connects impeller design choices to flow, head, and efficiency outcomes.
Lesson 2 • Casing, Volute, and Diffuser
Explains how the casing converts velocity energy to pressure and guides flow to the discharge. Links casing geometry to hydraulic efficiency and radial thrust.
Lesson 3 • Pump Couplings and Drive Arrangements
Reviews flexible couplings, direct drives, and belt drives used to transmit power to pumps. Prepares students to evaluate alignment requirements and drive selection.
Lesson 4 • Materials of Construction
Surveys metals, alloys, and non-metallic materials used for pump wetted parts. Guides material selection based on fluid chemistry, temperature, and pressure.
Lesson 5 • Shaft, Bearings, and Mechanical Seals
Covers shaft design, bearing types, and sealing systems that maintain pump integrity. Establishes the mechanical foundation for reliability and leak prevention.
Chapter 3HideHide detailsSee detailsPositive Displacement Pump Design
Positive Displacement Pump Design
Lesson 1 • Reciprocating Pump Mechanics
Explains piston, plunger, and diaphragm pump operation, including valve action and pulsation. Connects stroke mechanics to flow rate and pressure capability.
Lesson 2 • Performance Characteristics of PD Pumps
Analyzes flow-vs.-pressure curves, volumetric efficiency, and mechanical efficiency for PD pumps. Distinguishes PD behavior from centrifugal pump curves.
Lesson 3 • Rotary Positive Displacement Pumps
Covers gear, lobe, screw, and vane pump designs and their suitability for viscous fluids. Highlights internal clearances as the key factor in volumetric efficiency.
Lesson 4 • Valves and Sealing in PD Pumps
Examines check valves, relief valves, and shaft seals specific to positive displacement systems. Ensures students understand overpressure protection and leak control.
Chapter 4HideHide detailsSee detailsPump Performance and Hydraulic Analysis
Pump Performance and Hydraulic Analysis
Lesson 1 • Operating Point and Affinity Laws
Determines the pump operating point at the intersection of pump and system curves. Applies affinity laws to predict performance changes with speed or impeller trim.
Lesson 2 • Cavitation and NPSH Analysis
Explains cavitation causes, damage mechanisms, and NPSH margin requirements. Equips students to diagnose and prevent cavitation in system design.
Lesson 3 • System Curve Development
Guides calculation of static head, friction losses, and minor losses to build a system resistance curve. Links system design to pump selection accuracy.
Lesson 4 • Pump Performance Curves
Teaches construction and interpretation of H-Q, efficiency, and power curves from manufacturer data. Provides the analytical tools for all subsequent performance work.
Lesson 5 • Parallel and Series Pump Operation
Analyzes combined performance when pumps operate in parallel or series configurations. Prepares students to design multi-pump systems for variable demand.
Chapter 5HideHide detailsSee detailsPump Selection and System Design
Pump Selection and System Design
Lesson 1 • Pump Type Selection Logic
Provides a decision framework for choosing between centrifugal, PD, and specialty pumps. Connects fluid characteristics and duty cycle to the optimal pump family.
Lesson 2 • Piping Layout and Suction Design
Covers suction and discharge piping best practices to protect pump performance and reliability. Reduces field problems caused by poor piping configuration.
Lesson 3 • Specific Speed and Pump Geometry
Uses specific speed (Ns) to guide impeller geometry selection and predict efficiency ranges. Bridges hydraulic theory to practical pump catalog navigation.
Lesson 4 • Defining Application Requirements
Establishes the process of gathering flow, head, fluid properties, and operating conditions before selection. Prevents costly mismatches between pump and service.
Lesson 5 • Writing a Pump Specification
Structures a complete pump datasheet covering hydraulic, mechanical, and material requirements. Prepares students to communicate specifications to vendors and procurement teams.
Chapter 6HideHide detailsSee detailsPump Installation and Commissioning
Pump Installation and Commissioning
Lesson 1 • Foundation and Baseplate Requirements
Covers grouting, leveling, and baseplate stiffness requirements for stable pump operation. Prevents vibration and misalignment caused by inadequate foundations.
Lesson 2 • Shaft Alignment Techniques
Teaches dial indicator and laser alignment methods to achieve acceptable parallel and angular tolerances. Directly reduces bearing and seal failures from misalignment.
Lesson 3 • Pre-Startup Checks and Flushing
Details the inspection sequence—rotation check, lubrication, seal flush, and piping flush—before first start. Prevents early failures caused by contamination or dry running.
Lesson 4 • Startup, Performance Testing, and Handover
Guides controlled startup, performance verification against the design curve, and documentation for handover. Confirms the installation meets specification before operational acceptance.
Chapter 7HideHide detailsSee detailsPump Operation and Condition Monitoring
Pump Operation and Condition Monitoring
Lesson 1 • Vibration Analysis for Pumps
Covers vibration measurement, frequency analysis, and fault signatures specific to rotating pump components. Enables early detection of imbalance, misalignment, and cavitation.
Lesson 2 • Seal and Packing Monitoring
Monitors mechanical seal flush flows, leakage rates, and packing gland temperatures to detect seal degradation. Prevents unplanned shutdowns and environmental releases.
Lesson 3 • Normal Operating Parameters and Limits
Defines acceptable ranges for flow, pressure, temperature, vibration, and current during operation. Establishes the baseline against which deviations are judged.
Lesson 4 • Lubrication Management
Addresses oil and grease selection, change intervals, and contamination control for pump bearings. Proper lubrication is the single largest factor in bearing service life.
Lesson 5 • Online and Remote Monitoring Systems
Introduces continuous sensor networks, data historians, and alert logic for pump condition monitoring. Connects field instrumentation to predictive maintenance decision-making.
Chapter 8HideHide detailsSee detailsPump Maintenance and Troubleshooting
Pump Maintenance and Troubleshooting
Lesson 1 • Preventive Maintenance Planning
Structures time-based and condition-based maintenance tasks into a pump PM program. Reduces unplanned downtime by addressing wear before failure occurs.
Lesson 2 • Mechanical Seal Replacement
Details seal removal, surface inspection, and installation procedures to achieve leak-free reassembly. Mechanical seal failure is the leading cause of pump downtime.
Lesson 3 • Pump Disassembly and Inspection
Provides step-by-step disassembly procedures, clearance measurements, and wear assessment criteria. Ensures safe teardown and accurate condition evaluation.
Lesson 4 • Systematic Troubleshooting Methods
Applies structured fault-tree and cause-and-effect analysis to common pump problems. Moves students from symptom observation to verified root cause and corrective action.
Lesson 5 • Bearing Replacement and Reassembly
Covers bearing removal, fit verification, installation methods, and lubrication at reassembly. Correct bearing installation directly determines pump reliability after overhaul.
Your valid completion certificate
This course is for you:
Maintenance technician: wants to move beyond trial-and-error repairs confidently.
Process engineer: needs a stronger grasp of pump hydraulics and selection.
Reliability engineer: looking to build structured condition monitoring programs.
Mechanical engineering student: bridging classroom theory with real industrial equipment.
Plant operator: aiming to understand the equipment they run every shift.
Career changer: transitioning into oil, gas, or water treatment industries.
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